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Updated: May 27, 2025

Author Spotlight: Exploring the Role of Ion Channels in Cancer: Characterization and Potential Treatment Approaches
Published on: June 16, 2023
T-type calcium channels regulate medulloblastoma and can be targeted for therapy
Collin J Dube1, Michelle Lai1, Ying Zhang1
1Department of Microbiology, Immunology & Cancer Biology, University of Virginia, Charlottesville, VA, 22908, USA.
Purpose:
The goal of this study was to investigate the role and therapeutic targeting of T-type calcium channels in medulloblastoma, a common and deadly pediatric brain tumor that arises in the cerebellum.
Methods:
T-type calcium channel expression was assessed in publicly available bulk and single cell RNA-seq datasets. The effects of T-type calcium channel blocker mibefradil on cell growth, death and invasion were assessed with cell counting, alamar blue, trypan blue and transwell assays. Proteomic-based drug target and signaling pathway mapping was performed with Reverse Phase Protein Arrays (RPPA). Co-expression modules of single cell RNA-seq data were generated using high dimensional weighted gene co-expression network analysis (hdWGCNA). Orthotopic xenografts were used for therapeutic studies with the T-Type calcium channel blocker mibefradil.
Results:
T-type calcium channels were upregulated in more than 30% of medulloblastoma tumors and patients with high expression associated with a worse prognosis. T-type calcium channels had variable expression across all the subgroups of medulloblastoma at the bulk RNA-seq and single-cell RNA-seq level. Mibefradil treatment or siRNA mediated silencing of T-type calcium channels inhibited tumor cell growth, viability and invasion. RPPA-based protein/phosphoprotein signal pathway activation mapping of T-type calcium channel inhibition and single cell hdWGCNA identified altered cancer signaling pathways. Oral administration of mibefradil inhibited medulloblastoma xenograft growth and prolonged animal survival.
Conclusion:
Our results represent a first comprehensive multi-omic characterization of T-type calcium channels in medulloblastoma and provide preclinical data for repurposing mibefradil as a treatment strategy for these relatively common pediatric brain tumors.
Insights
T-type calcium channels are elevated in medulloblastoma, a pediatric brain tumor. Targeting these channels with mibefradil inhibited tumor growth and improved survival in preclinical models.
Area of Science:
- Oncology
- Neuroscience
- Pharmacology
Background:
- Medulloblastoma is a common and aggressive pediatric brain tumor.
- T-type calcium channels play a role in various cellular processes, including cancer progression.
Purpose of the Study:
- To investigate the role of T-type calcium channels in medulloblastoma.
- To evaluate mibefradil, a T-type calcium channel blocker, as a potential therapeutic agent.
Main Methods:
- Analysis of T-type calcium channel expression in medulloblastoma datasets (bulk and single-cell RNA-seq).
- Assessment of mibefradil's effects on medulloblastoma cell growth, viability, and invasion in vitro.
- Proteomic and gene co-expression network analysis to identify signaling pathways.
- Evaluation of mibefradil efficacy in orthotopic xenograft models.
Main Results:
- T-type calcium channels are upregulated in over 30% of medulloblastomas, correlating with poorer prognosis.
- Mibefradil treatment and gene silencing inhibited medulloblastoma cell growth, viability, and invasion.
- Mibefradil administration reduced tumor growth and prolonged survival in preclinical xenograft models.
Conclusions:
- This study provides a comprehensive multi-omic characterization of T-type calcium channels in medulloblastoma.
- Preclinical data support the repurposing of mibefradil as a therapeutic strategy for medulloblastoma.
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